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具有警戒色的蝴蝶生活史中氰化物防御的动态变化:生物合成与隔离。

The dynamics of cyanide defences in the life cycle of an aposematic butterfly: Biosynthesis versus sequestration.

机构信息

Department of Plant and Environmental Sciences, University of Copenhagen, Thorvaldsensvej 40, DK-1871, Frederiksberg, Denmark; Department of Zoology, Cambridge University. Downing Street, CB3 3EJ, Cambridge, United Kingdom.

Department of Plant and Environmental Sciences, University of Copenhagen, Thorvaldsensvej 40, DK-1871, Frederiksberg, Denmark.

出版信息

Insect Biochem Mol Biol. 2020 Jan;116:103259. doi: 10.1016/j.ibmb.2019.103259. Epub 2019 Nov 4.

Abstract

Heliconius butterflies are highly specialized in Passiflora plants, laying eggs and feeding as larvae only on them. Interestingly, both Heliconius butterflies and Passiflora plants contain cyanogenic glucosides (CNglcs). While feeding on specific Passiflora species, Heliconius melpomene larvae are able to sequester simple cyclopentenyl CNglcs, the most common CNglcs in this plant genus. Yet, aromatic, aliphatic, and modified CNglcs have been reported in Passiflora species and they were never tested for sequestration by heliconiine larvae. As other cyanogenic lepidopterans, H. melpomene also biosynthesize the aliphatic CNglcs linamarin and lotaustralin, and their toxicity does not rely exclusively on sequestration. Although the genes encoding the enzymes in the CNglc biosynthesis have not yet been biochemically characterized in butterflies, the cytochromes P450 CYP405A4, CYP405A5, CYP405A6 and CYP332A1 have been hypothesized to be involved in this pathway in H. melpomene. In this study, we determine how the CNglc composition and expression of the putative P450s involved in the biosynthesis of these compounds vary at different developmental stages of Heliconius butterflies. We also establish which kind of CNglcs H. melpomene larvae can sequester from Passiflora. By analysing the chemical composition of the haemolymph from larvae fed with different Passiflora diets, we show that H. melpomene is able to sequestered prunasin, an aromatic CNglcs, from P. platyloba. They are also able to sequester amygdalin, gynocardin, [C/C]linamarin and [C/C]lotaustralin painted on the plant leaves. The CNglc tetraphyllin B-sulphate from P. caerulea is not detected in the larval haemolymph, suggesting that such modified CNglcs cannot be sequestered by Heliconius. Although pupae and virgin adults contain dihydrogynocardin resulting from larval sequestration, this compound was metabolized during adulthood, and not used as nuptial gift or transferred to the offspring. Thus, we speculate that dihydrogynocardin is catabolized to recycle nitrogen and glucose, and/or to produce fitness signals during courtship. Mature adults have a higher concentration of CNglcs than any other developmental stages due to increased de novo biosynthesis of linamarin and lotaustralin. Accordingly, all CYP405As are expressed in adults, whereas larvae mostly express CYP405A4. Our results shed light on the importance of CNglcs for Heliconius biology and their coevolution with Passiflora.

摘要

姬闪蝶高度特化于西番莲属植物,仅在这些植物上产卵并以幼虫形式取食。有趣的是,姬闪蝶和西番莲属植物都含有氰基葡萄糖苷(CNglcs)。当幼虫以特定的西番莲属物种为食时,它们能够隔离简单的环戊烯基 CNglcs,这是该植物属中最常见的 CNglcs。然而,芳香族、脂肪族和修饰的 CNglcs 已在西番莲属物种中被报道,但从未有研究测试过它们是否被姬闪蝶幼虫隔离。与其他含氰的鳞翅目昆虫一样,H. melpomene 还生物合成脂肪族 CNglcs 亚麻苦苷和亚麻氰醇,并且它们的毒性并不完全依赖于隔离。尽管参与 CNglc 生物合成的酶的基因尚未在蝴蝶中进行生化表征,但细胞色素 P450 CYP405A4、CYP405A5、CYP405A6 和 CYP332A1 已被假设参与 H. melpomene 中的这一途径。在这项研究中,我们确定了 CNglc 的组成以及参与这些化合物生物合成的假定 P450s 的表达在不同的幼虫发育阶段如何变化。我们还确定了 H. melpomene 幼虫可以从西番莲属中隔离哪种 CNglcs。通过分析幼虫以不同西番莲属饮食为食时的血液化学成分,我们表明 H. melpomene 能够从 P. platyloba 中隔离芳香族的 CNglcs 扁桃腈。它们还能够隔离苦杏仁苷、银杏素、[C/C]亚麻苦苷和[C/C]亚麻氰醇,这些物质涂在植物叶片上。在幼虫血液中未检测到来自 P. caerulea 的 CNglc 四叶亭 B-硫酸盐,这表明这种修饰的 CNglc 不能被姬闪蝶隔离。尽管蛹和未交配的成虫含有幼虫隔离产生的二氢银杏素,但这种化合物在成虫期会被代谢,而不会作为求偶礼物或传递给后代。因此,我们推测二氢银杏素是为了循环氮和葡萄糖而被分解代谢的,或者是在求偶期间产生适合度信号。由于 linamarin 和 lotaustralin 的从头生物合成增加,成熟成虫的 CNglc 浓度高于任何其他发育阶段。因此,所有 CYP405As 都在成虫中表达,而幼虫主要表达 CYP405A4。我们的研究结果阐明了 CNglc 对姬闪蝶生物学的重要性及其与西番莲属的共同进化。

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